Professional Agents -- Evolving Large Language Models into Autonomous Experts with Human-Level Competencies

Fuente: arXiv
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Main Authors: Chu, Zhixuan, Wang, Yan, Zhu, Feng, Yu, Lu, Li, Longfei, Gu, Jinjie
Format: Preprint
Published: 2024
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author Chu, Zhixuan
Wang, Yan
Zhu, Feng
Yu, Lu
Li, Longfei
Gu, Jinjie
author_facet Chu, Zhixuan
Wang, Yan
Zhu, Feng
Yu, Lu
Li, Longfei
Gu, Jinjie
contents The advent of large language models (LLMs) such as ChatGPT, PaLM, and GPT-4 has catalyzed remarkable advances in natural language processing, demonstrating human-like language fluency and reasoning capacities. This position paper introduces the concept of Professional Agents (PAgents), an application framework harnessing LLM capabilities to create autonomous agents with controllable, specialized, interactive, and professional-level competencies. We posit that PAgents can reshape professional services through continuously developed expertise. Our proposed PAgents framework entails a tri-layered architecture for genesis, evolution, and synergy: a base tool layer, a middle agent layer, and a top synergy layer. This paper aims to spur discourse on promising real-world applications of LLMs. We argue the increasing sophistication and integration of PAgents could lead to AI systems exhibiting professional mastery over complex domains, serving critical needs, and potentially achieving artificial general intelligence.
format Preprint
id arxiv_https___arxiv_org_abs_2402_03628
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Professional Agents -- Evolving Large Language Models into Autonomous Experts with Human-Level Competencies
Chu, Zhixuan
Wang, Yan
Zhu, Feng
Yu, Lu
Li, Longfei
Gu, Jinjie
Computation and Language
The advent of large language models (LLMs) such as ChatGPT, PaLM, and GPT-4 has catalyzed remarkable advances in natural language processing, demonstrating human-like language fluency and reasoning capacities. This position paper introduces the concept of Professional Agents (PAgents), an application framework harnessing LLM capabilities to create autonomous agents with controllable, specialized, interactive, and professional-level competencies. We posit that PAgents can reshape professional services through continuously developed expertise. Our proposed PAgents framework entails a tri-layered architecture for genesis, evolution, and synergy: a base tool layer, a middle agent layer, and a top synergy layer. This paper aims to spur discourse on promising real-world applications of LLMs. We argue the increasing sophistication and integration of PAgents could lead to AI systems exhibiting professional mastery over complex domains, serving critical needs, and potentially achieving artificial general intelligence.
title Professional Agents -- Evolving Large Language Models into Autonomous Experts with Human-Level Competencies
topic Computation and Language
url https://arxiv.org/abs/2402.03628